Aerodynamic Drag Analysis of 3-DOF Flex-Gimbal GyroWheel System in the Sense of Ground Test
GyroWheel is an innovative device that combines the actuating capabilities of a control moment gyro with the rate sensing capabilities of a tuned rotor gyro by using a spinning flex-gimbal system. However, in the process of the ground test, the existence of aerodynamic disturbance is inevitable, whi...
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doaj-f5384c3e847a4e8bacff6652d85f19d92020-11-25T01:44:55ZengMDPI AGSensors1424-82202016-12-011612208110.3390/s16122081s16122081Aerodynamic Drag Analysis of 3-DOF Flex-Gimbal GyroWheel System in the Sense of Ground TestXin Huo0Sizhao Feng1Kangzhi Liu2Libin Wang3Weishan Chen4Control and Simulation Center, Harbin Institute of Technology, Harbin 150080, ChinaControl and Simulation Center, Harbin Institute of Technology, Harbin 150080, ChinaDepartment of Electrical and Electronic Engineering, Chiba University, Chiba 263-8522, JapanControl and Simulation Center, Harbin Institute of Technology, Harbin 150080, ChinaSchool of Mechatronics Engineering, Harbin Institute of Technology, Harbin 150080, ChinaGyroWheel is an innovative device that combines the actuating capabilities of a control moment gyro with the rate sensing capabilities of a tuned rotor gyro by using a spinning flex-gimbal system. However, in the process of the ground test, the existence of aerodynamic disturbance is inevitable, which hinders the improvement of the specification performance and control accuracy. A vacuum tank test is a possible candidate but is sometimes unrealistic due to the substantial increase in costs and complexity involved. In this paper, the aerodynamic drag problem with respect to the 3-DOF flex-gimbal GyroWheel system is investigated by simulation analysis and experimental verification. Concretely, the angular momentum envelope property of the spinning rotor system is studied and its integral dynamical model is deduced based on the physical configuration of the GyroWheel system with an appropriately defined coordinate system. In the sequel, the fluid numerical model is established and the model geometries are checked with FLUENT software. According to the diversity and time-varying properties of the rotor motions in three-dimensions, the airflow field around the GyroWheel rotor is analyzed by simulation with respect to its varying angular velocity and tilt angle. The IPC-based experimental platform is introduced, and the properties of aerodynamic drag in the ground test condition are obtained through comparing the simulation with experimental results.http://www.mdpi.com/1424-8220/16/12/2081GyroWheelaerodynamic dragdynamical modelingnumerical simulationexperimental verificationground test |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Xin Huo Sizhao Feng Kangzhi Liu Libin Wang Weishan Chen |
spellingShingle |
Xin Huo Sizhao Feng Kangzhi Liu Libin Wang Weishan Chen Aerodynamic Drag Analysis of 3-DOF Flex-Gimbal GyroWheel System in the Sense of Ground Test Sensors GyroWheel aerodynamic drag dynamical modeling numerical simulation experimental verification ground test |
author_facet |
Xin Huo Sizhao Feng Kangzhi Liu Libin Wang Weishan Chen |
author_sort |
Xin Huo |
title |
Aerodynamic Drag Analysis of 3-DOF Flex-Gimbal GyroWheel System in the Sense of Ground Test |
title_short |
Aerodynamic Drag Analysis of 3-DOF Flex-Gimbal GyroWheel System in the Sense of Ground Test |
title_full |
Aerodynamic Drag Analysis of 3-DOF Flex-Gimbal GyroWheel System in the Sense of Ground Test |
title_fullStr |
Aerodynamic Drag Analysis of 3-DOF Flex-Gimbal GyroWheel System in the Sense of Ground Test |
title_full_unstemmed |
Aerodynamic Drag Analysis of 3-DOF Flex-Gimbal GyroWheel System in the Sense of Ground Test |
title_sort |
aerodynamic drag analysis of 3-dof flex-gimbal gyrowheel system in the sense of ground test |
publisher |
MDPI AG |
series |
Sensors |
issn |
1424-8220 |
publishDate |
2016-12-01 |
description |
GyroWheel is an innovative device that combines the actuating capabilities of a control moment gyro with the rate sensing capabilities of a tuned rotor gyro by using a spinning flex-gimbal system. However, in the process of the ground test, the existence of aerodynamic disturbance is inevitable, which hinders the improvement of the specification performance and control accuracy. A vacuum tank test is a possible candidate but is sometimes unrealistic due to the substantial increase in costs and complexity involved. In this paper, the aerodynamic drag problem with respect to the 3-DOF flex-gimbal GyroWheel system is investigated by simulation analysis and experimental verification. Concretely, the angular momentum envelope property of the spinning rotor system is studied and its integral dynamical model is deduced based on the physical configuration of the GyroWheel system with an appropriately defined coordinate system. In the sequel, the fluid numerical model is established and the model geometries are checked with FLUENT software. According to the diversity and time-varying properties of the rotor motions in three-dimensions, the airflow field around the GyroWheel rotor is analyzed by simulation with respect to its varying angular velocity and tilt angle. The IPC-based experimental platform is introduced, and the properties of aerodynamic drag in the ground test condition are obtained through comparing the simulation with experimental results. |
topic |
GyroWheel aerodynamic drag dynamical modeling numerical simulation experimental verification ground test |
url |
http://www.mdpi.com/1424-8220/16/12/2081 |
work_keys_str_mv |
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